Super-elastic and fatigue resistant carbon material with lamellar multi-arch microstructure

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作者
Huai-Ling Gao
Yin-Bo Zhu
Li-Bo Mao
Feng-Chao Wang
Xi-Sheng Luo
Yang-Yi Liu
Yang Lu
Zhao Pan
Jin Ge
Wei Shen
Ya-Rong Zheng
Liang Xu
Lin-Jun Wang
Wei-Hong Xu
Heng-An Wu
Shu-Hong Yu
机构
[1] Hefei National Laboratory for Physical Sciences at the Microscale,Division of Nanomaterials & Chemistry, Department of Chemistry
[2] Collaborative Innovation Center of Suzhou Nano Science and Technology,Department of Modern Mechanics
[3] CAS Center for Excellence in Nanoscience,undefined
[4] Hefei Science Center of CAS,undefined
[5] University of Science and Technology of China,undefined
[6] CAS Key Laboratory of Mechanical Behavior and Design of Materials,undefined
[7] University of Science and Technology of China,undefined
[8] Nano-Materials and Environmental Detection Laboratory,undefined
[9] Hefei Institute of Intelligent Machines,undefined
[10] Chinese Academy of Sciences,undefined
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摘要
Low-density compressible materials enable various applications but are often hindered by structure-derived fatigue failure, weak elasticity with slow recovery speed and large energy dissipation. Here we demonstrate a carbon material with microstructure-derived super-elasticity and high fatigue resistance achieved by designing a hierarchical lamellar architecture composed of thousands of microscale arches that serve as elastic units. The obtained monolithic carbon material can rebound a steel ball in spring-like fashion with fast recovery speed (∼580 mm s−1), and demonstrates complete recovery and small energy dissipation (∼0.2) in each compress-release cycle, even under 90% strain. Particularly, the material can maintain structural integrity after more than 106 cycles at 20% strain and 2.5 × 105 cycles at 50% strain. This structural material, although constructed using an intrinsically brittle carbon constituent, is simultaneously super-elastic, highly compressible and fatigue resistant to a degree even greater than that of previously reported compressible foams mainly made from more robust constituents.
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